Elibol Kenan, Downing Clive, Hobbs Richard G
School of Chemistry, Centre for Research on Adaptive Nanostructures and Nanodevices (CRANN) and Advanced Materials and Bio-Engineering Research Centre (AMBER), Trinity College Dublin, Dublin 2, Ireland.
Nanotechnology. 2022 Sep 5;33(47). doi: 10.1088/1361-6528/ac8812.
In this work, we report the fabrication and spectroscopic characterization of subwavelength aluminum nanocavities-consisting of hexamer or tetramer clusters of sub 10 nm width Al nanorods-with tunable localized surface plasmon resonance (LSPR) energies on suspended SiNmembranes. Here the volume plasmon (VP) and LSPR modes of lithographically-fabricated Al nanocavities are revealed by low-loss electron energy-loss spectroscopy (EELS) in an aberration corrected scanning transmission electron microscope (STEM). We show that the existence of grain boundaries (GBs) in these nanocavities results in shifts in the VP energy and a reduction in the VP lifetime. We map the VP energy and lifetime across GBs and we observe a decrease in VP energy and lifetime at GBs that is consistent with a reduction in free carrier density and increased plasmon scattering at these locations. Dipolar LSPR modes resonant in the UV and blue regions of the electromagnetic spectrum as well as higher-energy optically dark quadrupolar and hexapolar LSPR modes are also observed and mapped by STEM and EELS. All LSPR modes are confirmed via electromagnetic simulations based on the boundary element method. Both tetramer and hexamer structures support the excitation of dipolar bright and dipolar dark modes. Finally, we find that asymmetries in fabricated nanorod hexamer and tetramer nanocavities result in a mode mixing leading to a shift in dipolar dark LSPR modes.
在这项工作中,我们报告了在悬浮的氮化硅膜上制备并表征了由宽度小于10 nm的铝纳米棒的六聚体或四聚体簇组成的亚波长铝纳米腔,其具有可调谐的局域表面等离子体共振(LSPR)能量。在这里,通过像差校正扫描透射电子显微镜(STEM)中的低损耗电子能量损失谱(EELS)揭示了光刻制备的铝纳米腔的体等离子体(VP)和LSPR模式。我们表明,这些纳米腔中晶界(GBs)的存在导致VP能量的偏移和VP寿命的降低。我们绘制了晶界上的VP能量和寿命图,并且观察到晶界处VP能量和寿命的降低,这与这些位置处自由载流子密度的降低以及等离子体散射的增加相一致。还通过STEM和EELS观察并绘制了在电磁光谱的紫外和蓝色区域共振的偶极LSPR模式以及更高能量的光学暗四极和六极LSPR模式。所有LSPR模式均通过基于边界元法的电磁模拟得到证实。四聚体和六聚体结构均支持偶极亮模式和偶极暗模式的激发。最后,我们发现制造的纳米棒六聚体和四聚体纳米腔中的不对称性导致模式混合,从而导致偶极暗LSPR模式发生偏移。